source: mainline/uspace/drv/time/cmos-rtc/cmos-rtc.c@ f6af126

lfn serial ticket/834-toolchain-update topic/msim-upgrade topic/simplify-dev-export
Last change on this file since f6af126 was f6af126, checked in by Maurizio Lombardi <m.lombardi85@…>, 14 years ago

rtc: force the rtc to operate in 24h mode (it should be active by default).

  • Property mode set to 100644
File size: 15.4 KB
Line 
1/*
2 * Copyright (c) 2012 Maurizio Lombardi
3 * All rights reserved.
4 *
5 * Redistribution and use in source and binary forms, with or without
6 * modification, are permitted provided that the following conditions
7 * are met:
8 *
9 * - Redistributions of source code must retain the above copyright
10 * notice, this list of conditions and the following disclaimer.
11 * - Redistributions in binary form must reproduce the above copyright
12 * notice, this list of conditions and the following disclaimer in the
13 * documentation and/or other materials provided with the distribution.
14 * - The name of the author may not be used to endorse or promote products
15 * derived from this software without specific prior written permission.
16 *
17 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
18 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
19 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
20 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
21 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
22 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
23 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
24 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
25 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
26 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
27 */
28
29/**
30 * @defgroup CMOS RTC driver.
31 * @brief HelenOS RTC driver.
32 * @{
33 */
34
35/** @file
36 */
37
38#include <errno.h>
39#include <ddi.h>
40#include <libarch/ddi.h>
41#include <stdio.h>
42#include <ddf/driver.h>
43#include <ddf/log.h>
44#include <ops/clock_dev.h>
45#include <fibril_synch.h>
46#include <device/hw_res.h>
47#include <devman.h>
48#include <ipc/clock_ctl.h>
49
50#include "cmos-regs.h"
51
52#define NAME "cmos-rtc"
53
54#define REG_COUNT 2
55
56#define RTC_FROM_FNODE(fnode) ((rtc_t *) ((fnode)->dev->driver_data))
57#define RTC_FROM_DEV(devnode) ((rtc_t *) ((devnode)->driver_data))
58
59typedef struct rtc {
60 /** DDF device node */
61 ddf_dev_t *dev;
62 /** DDF function node */
63 ddf_fun_t *fun;
64 /** The fibril mutex for synchronizing the access to the device */
65 fibril_mutex_t mutex;
66 /** The base I/O address of the device registers */
67 uint32_t io_addr;
68 /** The I/O port used to access the CMOS registers */
69 ioport8_t *port;
70 /** true if a client is connected to the device */
71 bool client_connected;
72 /** true if device is removed */
73 bool removed;
74} rtc_t;
75
76
77static int rtc_time_get(ddf_fun_t *fun, struct tm *t);
78static int rtc_time_set(ddf_fun_t *fun, struct tm *t);
79static int rtc_dev_add(ddf_dev_t *dev);
80static int rtc_dev_initialize(rtc_t *rtc);
81static bool rtc_pio_enable(rtc_t *rtc);
82static void rtc_dev_cleanup(rtc_t *rtc);
83static int rtc_open(ddf_fun_t *fun);
84static void rtc_close(ddf_fun_t *fun);
85static bool rtc_update_in_progress(rtc_t *rtc);
86static int rtc_register_read(rtc_t *rtc, int reg);
87static unsigned bcd2bin(unsigned bcd);
88static unsigned bin2bcd(unsigned binary);
89static void rtc_default_handler(ddf_fun_t *fun,
90 ipc_callid_t callid, ipc_call_t *call);
91static int rtc_dev_remove(ddf_dev_t *dev);
92static int rtc_tm_sanity_check(struct tm *t);
93static void rtc_register_write(rtc_t *rtc, int reg, int data);
94static bool is_leap_year(int year);
95
96static int days_month[12] = {31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31};
97
98static ddf_dev_ops_t rtc_dev_ops;
99
100/** The RTC device driver's standard operations */
101static driver_ops_t rtc_ops = {
102 .dev_add = rtc_dev_add,
103 .dev_remove = rtc_dev_remove,
104};
105
106/** The RTC device driver structure */
107static driver_t rtc_driver = {
108 .name = NAME,
109 .driver_ops = &rtc_ops,
110};
111
112/** Clock interface */
113static clock_dev_ops_t rtc_clock_dev_ops = {
114 .time_get = rtc_time_get,
115 .time_set = rtc_time_set,
116};
117
118/** Initialize the RTC driver */
119static void
120rtc_init(void)
121{
122 ddf_log_init(NAME, LVL_ERROR);
123
124 rtc_dev_ops.open = rtc_open;
125 rtc_dev_ops.close = rtc_close;
126
127 rtc_dev_ops.interfaces[CLOCK_DEV_IFACE] = &rtc_clock_dev_ops;
128 rtc_dev_ops.default_handler = &rtc_default_handler;
129}
130
131/** Clean up the RTC soft state
132 *
133 * @param rtc The RTC device
134 */
135static void
136rtc_dev_cleanup(rtc_t *rtc)
137{
138 if (rtc->dev->parent_sess) {
139 async_hangup(rtc->dev->parent_sess);
140 rtc->dev->parent_sess = NULL;
141 }
142}
143
144/** Enable the I/O ports of the device
145 *
146 * @param rtc The real time clock device
147 *
148 * @return true in case of success, false otherwise
149 */
150static bool
151rtc_pio_enable(rtc_t *rtc)
152{
153 if (pio_enable((void *)(uintptr_t) rtc->io_addr, REG_COUNT,
154 (void **) &rtc->port)) {
155
156 ddf_msg(LVL_ERROR, "Cannot map the port %#" PRIx32
157 " for device %s", rtc->io_addr, rtc->dev->name);
158 return false;
159 }
160
161 return true;
162}
163
164/** Initialize the RTC device
165 *
166 * @param rtc Pointer to the RTC device
167 *
168 * @return EOK on success or a negative error code
169 */
170static int
171rtc_dev_initialize(rtc_t *rtc)
172{
173 int rc;
174 size_t i;
175 hw_resource_t *res;
176 bool ioport = false;
177
178 ddf_msg(LVL_DEBUG, "rtc_dev_initialize %s", rtc->dev->name);
179
180 hw_resource_list_t hw_resources;
181 memset(&hw_resources, 0, sizeof(hw_resource_list_t));
182
183 /* Connect to the parent's driver */
184
185 rtc->dev->parent_sess = devman_parent_device_connect(EXCHANGE_SERIALIZE,
186 rtc->dev->handle, IPC_FLAG_BLOCKING);
187 if (!rtc->dev->parent_sess) {
188 ddf_msg(LVL_ERROR, "Failed to connect to parent driver\
189 of device %s.", rtc->dev->name);
190 rc = ENOENT;
191 goto error;
192 }
193
194 /* Get the HW resources */
195 rc = hw_res_get_resource_list(rtc->dev->parent_sess, &hw_resources);
196 if (rc != EOK) {
197 ddf_msg(LVL_ERROR, "Failed to get HW resources\
198 for device %s", rtc->dev->name);
199 goto error;
200 }
201
202 for (i = 0; i < hw_resources.count; ++i) {
203 res = &hw_resources.resources[i];
204
205 if (res->type == IO_RANGE) {
206 if (res->res.io_range.size < REG_COUNT) {
207 ddf_msg(LVL_ERROR, "I/O range assigned to \
208 device %s is too small", rtc->dev->name);
209 rc = ELIMIT;
210 goto error;
211 }
212 rtc->io_addr = res->res.io_range.address;
213 ioport = true;
214 ddf_msg(LVL_NOTE, "Device %s was assigned I/O address \
215 0x%x", rtc->dev->name, rtc->io_addr);
216 }
217 }
218
219 if (!ioport) {
220 /* No I/O address assigned to this device */
221 ddf_msg(LVL_ERROR, "Missing HW resource for device %s",
222 rtc->dev->name);
223 rc = ENOENT;
224 goto error;
225 }
226
227 hw_res_clean_resource_list(&hw_resources);
228
229 return EOK;
230
231error:
232 rtc_dev_cleanup(rtc);
233 hw_res_clean_resource_list(&hw_resources);
234
235 return rc;
236}
237
238/** Read a register from the CMOS memory
239 *
240 * @param rtc The rtc device
241 * @param reg The index of the register to read
242 *
243 * @return The value of the register
244 */
245static int
246rtc_register_read(rtc_t *rtc, int reg)
247{
248 pio_write_8(rtc->port, reg);
249 return pio_read_8(rtc->port + 1);
250}
251
252/** Write a register to the CMOS memory
253 *
254 * @param rtc The rtc device
255 * @param reg The index of the register to write
256 * @param data The data to write
257 */
258static void
259rtc_register_write(rtc_t *rtc, int reg, int data)
260{
261 pio_write_8(rtc->port, reg);
262 pio_write_8(rtc->port + 1, data);
263}
264
265/** Check if an update is in progress
266 *
267 * @param rtc The rtc device
268 *
269 * @return true if an update is in progress, false otherwise
270 */
271static bool
272rtc_update_in_progress(rtc_t *rtc)
273{
274 return rtc_register_read(rtc, RTC_STATUS_A) & RTC_MASK_UPDATE;
275}
276
277/** Read the current time from the CMOS
278 *
279 * @param fun The RTC function
280 * @param t Pointer to the time variable
281 *
282 * @return EOK on success or a negative error code
283 */
284static int
285rtc_time_get(ddf_fun_t *fun, struct tm *t)
286{
287 bool bcd_mode;
288 bool pm_mode = false;
289 rtc_t *rtc = RTC_FROM_FNODE(fun);
290
291 fibril_mutex_lock(&rtc->mutex);
292
293 /* now read the registers */
294 do {
295 /* Suspend until the update process has finished */
296 while (rtc_update_in_progress(rtc));
297
298 t->tm_sec = rtc_register_read(rtc, RTC_SEC);
299 t->tm_min = rtc_register_read(rtc, RTC_MIN);
300 t->tm_hour = rtc_register_read(rtc, RTC_HOUR);
301 t->tm_mday = rtc_register_read(rtc, RTC_DAY);
302 t->tm_mon = rtc_register_read(rtc, RTC_MON);
303 t->tm_year = rtc_register_read(rtc, RTC_YEAR);
304
305 /* Now check if it is stable */
306 } while( t->tm_sec != rtc_register_read(rtc, RTC_SEC) ||
307 t->tm_min != rtc_register_read(rtc, RTC_MIN) ||
308 t->tm_mday != rtc_register_read(rtc, RTC_DAY) ||
309 t->tm_mon != rtc_register_read(rtc, RTC_MON) ||
310 t->tm_year != rtc_register_read(rtc, RTC_YEAR));
311
312 /* Check if the RTC is working in 12h mode */
313 bool _12h_mode = !(rtc_register_read(rtc, RTC_STATUS_B) &
314 RTC_MASK_24H);
315
316 if (_12h_mode) {
317 /* The RTC is working in 12h mode, check if it is AM or PM */
318 if (t->tm_hour & 0x80) {
319 /* PM flag is active, it must to be cleared
320 * or the BCD conversion will fail.
321 */
322 t->tm_hour &= ~0x80;
323 pm_mode = true;
324 }
325 }
326
327 /* Check if the RTC is working in BCD mode */
328 bcd_mode = !(rtc_register_read(rtc, RTC_STATUS_B) & RTC_MASK_BCD);
329
330 if (bcd_mode) {
331 t->tm_sec = bcd2bin(t->tm_sec);
332 t->tm_min = bcd2bin(t->tm_min);
333 t->tm_hour = bcd2bin(t->tm_hour);
334 t->tm_mday = bcd2bin(t->tm_mday);
335 t->tm_mon = bcd2bin(t->tm_mon);
336 t->tm_year = bcd2bin(t->tm_year);
337 }
338
339 if (_12h_mode) {
340 /* Convert to 24h mode */
341 if (pm_mode) {
342 if (t->tm_hour < 12)
343 t->tm_hour += 12;
344 } else if (t->tm_hour == 12)
345 t->tm_hour = 0;
346 }
347
348 /* Count the months starting from 0, not from 1 */
349 t->tm_mon--;
350
351 if (t->tm_year < 100) {
352 /* tm_year is the number of years since 1900, it is not
353 * possible it is < 100.
354 */
355 t->tm_year += 100;
356 }
357
358 fibril_mutex_unlock(&rtc->mutex);
359 return EOK;
360}
361
362/** Set the time in the RTC
363 *
364 * @param fun The RTC function
365 * @param t The time value to set
366 *
367 * @return EOK or a negative error code
368 */
369static int
370rtc_time_set(ddf_fun_t *fun, struct tm *t)
371{
372 int rc;
373 bool bcd_mode;
374 int reg_b;
375 int reg_a;
376 rtc_t *rtc = RTC_FROM_FNODE(fun);
377
378 rc = rtc_tm_sanity_check(t);
379 if (rc != EOK)
380 return rc;
381
382 t->tm_mon++; /* counts from 1, not from 0 */
383
384 fibril_mutex_lock(&rtc->mutex);
385
386 reg_b = rtc_register_read(rtc, RTC_STATUS_B);
387
388 /* Force 24h mode of operation */
389 rtc_register_write(rtc, RTC_STATUS_B, reg_b | RTC_MASK_24H);
390
391 /* Check if the rtc is working in bcd mode */
392 bcd_mode = !(reg_b & RTC_MASK_BCD);
393 if (bcd_mode) {
394 /* Convert the tm struct fields in BCD mode */
395 t->tm_sec = bin2bcd(t->tm_sec);
396 t->tm_min = bin2bcd(t->tm_min);
397 t->tm_hour = bin2bcd(t->tm_hour);
398 t->tm_mday = bin2bcd(t->tm_mday);
399 t->tm_mon = bin2bcd(t->tm_mon + 1);
400 t->tm_year = bin2bcd(t->tm_year);
401 }
402
403 /* Inhibit updates */
404 rtc_register_write(rtc, RTC_STATUS_B, reg_b | RTC_MASK_INH);
405
406 /* Write current time to RTC */
407 rtc_register_write(rtc, RTC_SEC, t->tm_sec);
408 rtc_register_write(rtc, RTC_MIN, t->tm_min);
409 rtc_register_write(rtc, RTC_HOUR, t->tm_hour);
410 rtc_register_write(rtc, RTC_DAY, t->tm_mday);
411 rtc_register_write(rtc, RTC_MON, t->tm_mon);
412 rtc_register_write(rtc, RTC_YEAR, t->tm_year);
413
414 /* Stop the clock */
415 reg_a = rtc_register_read(rtc, RTC_STATUS_A);
416 rtc_register_write(rtc, RTC_STATUS_A, RTC_MASK_CLK_STOP | reg_a);
417
418 /* Enable updates */
419 rtc_register_write(rtc, RTC_STATUS_B, reg_b);
420 rtc_register_write(rtc, RTC_STATUS_A, reg_a);
421
422 fibril_mutex_unlock(&rtc->mutex);
423
424 return rc;
425}
426
427/** Check if the tm structure contains valid values
428 *
429 * @param t The tm structure to check
430 *
431 * @return EOK on success or EINVAL
432 */
433static int
434rtc_tm_sanity_check(struct tm *t)
435{
436 int ndays;
437
438 if (t->tm_sec < 0 || t->tm_sec > 59)
439 return EINVAL;
440 else if (t->tm_min < 0 || t->tm_min > 59)
441 return EINVAL;
442 else if (t->tm_hour < 0 || t->tm_hour > 23)
443 return EINVAL;
444 else if (t->tm_mday < 1 || t->tm_mday > 31)
445 return EINVAL;
446 else if (t->tm_mon < 0 || t->tm_mon > 11)
447 return EINVAL;
448 else if (t->tm_year < 0)
449 return EINVAL;
450
451 if (t->tm_mon == 1/* FEB */ && is_leap_year(t->tm_year))
452 ndays = 29;
453 else
454 ndays = days_month[t->tm_mon];
455
456 if (t->tm_mday > ndays)
457 return EINVAL;
458
459 return EOK;
460}
461
462/** Check if a year is a leap year
463 *
464 * @param year The year to check
465 *
466 * @return true if it is a leap year, false otherwise
467 */
468static bool
469is_leap_year(int year)
470{
471 bool r = false;
472
473 if (year % 4 == 0) {
474 if (year % 100 == 0)
475 r = year % 400 == 0;
476 else
477 r = true;
478 }
479
480 return r;
481}
482
483/** The dev_add callback of the rtc driver
484 *
485 * @param dev The RTC device
486 *
487 * @return EOK on success or a negative error code
488 */
489static int
490rtc_dev_add(ddf_dev_t *dev)
491{
492 rtc_t *rtc;
493 ddf_fun_t *fun = NULL;
494 int rc;
495 bool need_cleanup = false;
496
497 ddf_msg(LVL_DEBUG, "rtc_dev_add %s (handle = %d)",
498 dev->name, (int) dev->handle);
499
500 rtc = ddf_dev_data_alloc(dev, sizeof(rtc_t));
501 if (!rtc)
502 return ENOMEM;
503
504 rtc->dev = dev;
505 fibril_mutex_initialize(&rtc->mutex);
506
507 rc = rtc_dev_initialize(rtc);
508 if (rc != EOK)
509 goto error;
510
511 need_cleanup = true;
512
513 if (!rtc_pio_enable(rtc)) {
514 rc = EADDRNOTAVAIL;
515 goto error;
516 }
517
518 fun = ddf_fun_create(dev, fun_exposed, "a");
519 if (!fun) {
520 ddf_msg(LVL_ERROR, "Failed creating function");
521 rc = ENOENT;
522 goto error;
523 }
524
525 fun->ops = &rtc_dev_ops;
526 rc = ddf_fun_bind(fun);
527 if (rc != EOK) {
528 ddf_msg(LVL_ERROR, "Failed binding function");
529 goto error;
530 }
531
532 rtc->fun = fun;
533
534 ddf_fun_add_to_category(fun, "clock");
535
536 rtc->client_connected = false;
537
538 ddf_msg(LVL_NOTE, "Device %s successfully initialized",
539 dev->name);
540
541 return rc;
542
543error:
544 if (fun)
545 ddf_fun_destroy(fun);
546 if (need_cleanup)
547 rtc_dev_cleanup(rtc);
548 return rc;
549}
550
551/** The dev_remove callback for the rtc driver
552 *
553 * @param dev The RTC device
554 *
555 * @return EOK on success or a negative error code
556 */
557static int
558rtc_dev_remove(ddf_dev_t *dev)
559{
560 rtc_t *rtc = RTC_FROM_DEV(dev);
561 int rc;
562
563 fibril_mutex_lock(&rtc->mutex);
564 if (rtc->client_connected) {
565 fibril_mutex_unlock(&rtc->mutex);
566 return EBUSY;
567 }
568
569 rtc->removed = true;
570 fibril_mutex_unlock(&rtc->mutex);
571
572 rc = ddf_fun_unbind(rtc->fun);
573 if (rc != EOK) {
574 ddf_msg(LVL_ERROR, "Failed to unbind function");
575 return rc;
576 }
577
578 ddf_fun_destroy(rtc->fun);
579 rtc_dev_cleanup(rtc);
580
581 return rc;
582}
583
584/** Default handler for client requests not handled
585 * by the standard interface
586 */
587static void
588rtc_default_handler(ddf_fun_t *fun, ipc_callid_t callid, ipc_call_t *call)
589{
590 sysarg_t method = IPC_GET_IMETHOD(*call);
591 rtc_t *rtc = RTC_FROM_FNODE(fun);
592 bool batt_ok;
593
594 switch (method) {
595 case CLOCK_GET_BATTERY_STATUS:
596 batt_ok = rtc_register_read(rtc, RTC_STATUS_D) &
597 RTC_BATTERY_OK;
598 async_answer_1(callid, EOK, batt_ok);
599 break;
600 default:
601 async_answer_0(callid, ENOTSUP);
602 }
603}
604
605/** Open the device
606 *
607 * @param fun The function node
608 *
609 * @return EOK on success or a negative error code
610 */
611static int
612rtc_open(ddf_fun_t *fun)
613{
614 int rc;
615 rtc_t *rtc = RTC_FROM_FNODE(fun);
616
617 fibril_mutex_lock(&rtc->mutex);
618
619 if (rtc->client_connected)
620 rc = ELIMIT;
621 else if (rtc->removed)
622 rc = ENXIO;
623 else {
624 rc = EOK;
625 rtc->client_connected = true;
626 }
627
628 fibril_mutex_unlock(&rtc->mutex);
629 return rc;
630}
631
632/** Close the device
633 *
634 * @param fun The function node
635 */
636static void
637rtc_close(ddf_fun_t *fun)
638{
639 rtc_t *rtc = RTC_FROM_FNODE(fun);
640
641 fibril_mutex_lock(&rtc->mutex);
642
643 assert(rtc->client_connected);
644 rtc->client_connected = false;
645
646 fibril_mutex_unlock(&rtc->mutex);
647}
648
649/** Convert from BCD mode to binary mode
650 *
651 * @param bcd The number in BCD format to convert
652 *
653 * @return The converted value
654 */
655static unsigned
656bcd2bin(unsigned bcd)
657{
658 return ((bcd & 0xF0) >> 1) + ((bcd & 0xF0) >> 3) + (bcd & 0xf);
659}
660
661/** Convert from binary mode to BCD mode
662 *
663 * @param bcd The number in binary mode to convert
664 *
665 * @return The converted value
666 */
667static unsigned
668bin2bcd(unsigned binary)
669{
670 return ((binary / 10) << 4) + (binary % 10);
671}
672
673int
674main(int argc, char **argv)
675{
676 printf(NAME ": HelenOS RTC driver\n");
677 rtc_init();
678 return ddf_driver_main(&rtc_driver);
679}
680
681/**
682 * @}
683 */
Note: See TracBrowser for help on using the repository browser.